Theoretical framework and simulation of an adaptive BCI based on movement-related and error potentials - Analyse et Décision en Traitement du Signal et Images Accéder directement au contenu
Communication Dans Un Congrès Année : 2011

Theoretical framework and simulation of an adaptive BCI based on movement-related and error potentials

Résumé

Error potentials generated in response to an error made by the translation algorithm can be used to improve the performance of a BCI, as a feedback extracted from the user. The present study addresses the inclusion of error potentials in a BCI system based on the decoding of movement-related cortical potentials (MRCPs). First, we theoretically quantified the improvement in accuracy of the BCI system when using error potentials for correcting the output decision, in the general case of multiclass BCI. The derived theoretical expressions can be used during the design phase of any BCI system. Second, we studied in simulation the performance of the closed-loop system in order to evaluate its ability to adapt to the changes in the mental states of the user. By setting the parameters of the simulator to experimentally determined values, we showed that updating the learning set with the examples estimated as correct based on the decoding of error potentials leads to convergence to the optimal solution.
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Dates et versions

hal-00660468 , version 1 (16-01-2012)

Identifiants

  • HAL Id : hal-00660468 , version 1

Citer

Xavier Artusi, Imran Khan Niazi, Marie Lucas, Dario Farina. Theoretical framework and simulation of an adaptive BCI based on movement-related and error potentials. 5th International Brain-Computer Interface Conference, Sep 2011, Graz, Austria. pp.1-4. ⟨hal-00660468⟩
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